Journal of Otolaryngology and Ophthalmology of Shandong University ›› 2020, Vol. 34 ›› Issue (1): 89-92.doi: 10.6040/j.issn.1673-3770.0.2019.280

Previous Articles    

Effects of intraocular lens implantation and postoperative intraocular pressure fluctuations on the fundus macular and optic disc vascular density

LI Rui, LI Yong, XIE Hongtao, YUE ZhangXian, LIU Zhaochen, YUAN huimin   

  1. Department of Ophthalmology, Xiaogan Hospital, Wuhan University of Science and Technology, Xiaogan 432000, Hubei, China
  • Published:2020-03-06

Abstract: Objective To analyze the effect of intraocular pressure fluctuations on vascular density in patients who undergo cataract surgery. Methods One hundred patients(100 eyes)who underwent phacoemulsification and intraocular lens implantation at our hospital between January 2016 and January 2019 were enrolled. The patients were divided into 4 groups according to their intraocular pressure levels as follows: 38 patients were in the <21 mmHg group, 15 patients the 21-30 mmHg group, 19 patients in the 31-40 mmHg group, and 28 patients were in the >40 mmHg group. The patients underwent an intraocular pressure and macular spot test before and after surgery, as well as 60 minutes, 8 hours, and 24 hours after the operation. Optic disc vascular density and perfusion density were also determined. Results Immediately after the surgery and 1-hour following, the macular and optic disc perfusion density were lower than before the operation. In the >40 mmHg group, the intraocular pressure was lower than the preoperative blood density 8 hours after surgery. The macular density and optic disc perfusion density were lower than before the operation after 24 hours in the >40 mmHg group. The macular perfusion density of patients in the 31-40 mmHg and >40 mmHg groups was lower than before the operation. Conclusion Intraoperative perfusion pressure in cataract surgery can cause optic disc macular perfusion density and vascular density to decrease. Vascular density can be restored to a normal level 60 minutes after the operation. The fundus blood flow density will be affected by intraocular pressure fluctuations.

Key words: Cataract, Fundus blood flow density, Optical coherence tomography angiography, Intraocular pressure

CLC Number: 

  • R776.1
[1] 刘玉青, 张海燕, 王静娴. 年龄相关性黄斑变性的白内障患者人工晶状体植入术后疗效观察[J]. 现代仪器与医疗, 2017, 23(2): 81-83. doi:10.11876/mimt201704033. LIU Yuqing, ZHANG Haiyan, WANG Jingxian. Effect of intraocular lens implantation in cataract patients with age-related macular degeneration[J]. Modern Instruments Mediccal Treatment, 2017, 23(2): 81-83. doi:10.11876/mimt201704033.
[2] Alnawaiseh M, Müller V, Lahme L, et al. Changes in flow density measured using optical coherence tomography angiography after iStent insertion in combination with phacoemulsification in patients with open-angle glaucoma[J]. J Ophthalmol, 2018, 2018: 1-5. doi:10.1155/2018/2890357.
[3] 杨杰, 高玲. 31例脉络膜皱褶光学相干断层扫描表现及其影响因素分析[J]. 中国医师杂志, 2017, 19(11): 1736-1737. doi:10.3760/cma.j.issn.1008-1372.2017.11.040.
[4] 焦芮, 韩克阳, 王淑雅, 等. 光学相干断层扫描技术在非动脉炎性前部缺血性视神经病变中的诊断现状[J]. 山东大学耳鼻喉眼学报, 2017, 31(1):119-122. doi:10.6040/j.issn.1673-3770.0.2016.451. JIAO Rui, HAN Keyang, WANG Shuya, et al. The situation of optical coherence tomography in the diagnosis of non-arteritic anterior ischemic optic neuropathy[J]. Journal Otolaryngology and Ophthalmology of Shandong University, 2017, 31(1):119-122. doi:10.6040/j.issn.1673-3770.0.2016.451.
[5] Grudzińska E, Modrzejewska M. Modern diagnostic techniques for the assessment of ocular blood flow in myopia: current state of knowledge[J]. J Ophthalmol, 2018, 2018: 4694789. doi:10.1155/2018/4694789.
[6] Zong Y, Xu H, Yu J, et al. Retinal vascular autoregulation during phase IV of the Valsalva maneuver: an optical coherence tomography angiography study in healthy Chinese adults[J]. Front Physiol, 2017, 8: 553. doi:10.3389/fphys.2017.00553.
[7] 陈娜, 闫焱, 李祯, 等. 葡萄膜炎患者的荧光素眼底血管造影及光学相干断层扫描的特点分析[J]. 上海交通大学学报(医学版), 2017, 37(12): 1653-1657. doi:10.3969/j.issn.1674-8115.2017.12.013. CHEN Na, YAN Yan, LI Zhen, et al. Characteristic analysis of fundus fluorescein angiography and optical coherence tomography findings in uveitis[J]. Journal of Shanghai Jiao Tong University(Medical Science), 2017, 37(12): 1653-1657. doi:10.3969/j.issn.1674-8115.2017.12.013.
[8] Zhu L, Zong Y, Yu J, et al. Reduced retinal vessel density in primary angle closure glaucoma: a quantitative study using optical coherence tomography angiography[J]. J Glaucoma, 2018, 27(4):322-327. doi:10.1097/IJG.0000000000000900.
[9] Moussa M, Leila M, Khalid H. Imaging choroidal neovascular membrane using en face swept-source optical coherence tomography angiography[J]. Clin Ophthalmol, 2017, 11: 1859-1869. doi:10.2147/OPTH.S143018.
[10] 刘青, 艾明. 光学相干断层扫描血管成像(OCTA)和荧光素血管造影(FFA)对比观察增生型糖尿病视网膜病变(PDR)[J]. 眼科新进展, 2017, 37(1): 52-55. doi:10.13389/j.cnki.rao.2017.0014. LIU Qing, AI Ming. Characteristics of proliferative diabetic retinopathy observed by optical coherence tomography angiography and fundus fluorescein angiography[J]. Recent Advances in Ophthalmology, 2017, 37(1): 52-55. doi:10.13389/j.cnki.rao.2017.0014.
[11] 赵丰平, 杜持新, 蔡思捷. 结膜良性增生性疾病的光学相干断层扫描特征[J]. 中华眼视光学与视觉科学杂志, 2018, 20(9): 556-560. doi:10.3760/cma.j.issn.1674-845X.2018.09.009. ZHAO Fengping, DU Chixin, CAI Sijie. Structural imaging of benign conjunctival proliferative diseases using optical coherence tomography[J]. Chinese Journal of Optometry Ophthalmology and Visual Science, 2018, 20(9): 556-560. doi:10.3760/cma.j.issn.1674-845X.2018.09.009.
[12] Augustin M, Fialová S, Fischak C, et al. Ocular fundus pulsations within the posterior rat eye: Chorioscleral motion and response to elevated intraocular pressure[J]. Sci Rep, 2017, 7(1): 8780. doi:10.1038/s41598-017-09310-1.
[13] 梁倩倩, 杨庭骅, 赵博军. 光学相干层析血管扫描在视网膜静脉阻塞中的应用[J]. 山东大学耳鼻喉眼学报, 2019, 33(2): 139-142. doi:10.6040/j.issn.1673-3770.0.2018.364. LIANG Qianqian, YANG Tinghua, ZHAO Bojun. Application of optical coherence tomography angiography in retinal vein occlusion[J]. Journal of Otolaryngology and Ophthalmology of Shandong University, 2019, 33(2): 139-142. doi:10.6040/j.issn.1673-3770.0.2018.364.
[14] Kang AS, Welch RJ, Sioufi K, et al. Optical coherence tomography angiography of iris microhemangiomatosis[J]. Am J Ophthalmol Case Rep, 2017, 6(3):24-26. doi:10.1016/j.ajoc.2017.02.003
[15] Glacet-Bernard A, Sellam A, Coscas F, et al. Optical coherence tomography angiography in retinal vein occlusion treated with dexamethasone implant: a new test for follow-up evaluation[J]. Eur J Ophthalmol, 2016, 26(5): 460-468. doi:10.5301/ejo.5000829.
[16] Susanna BN, Ogata NG, Jammal AA, et al. Corneal biomechanics and visual field progression in eyes with seemingly well-controlled intraocular pressure[J]. Ophthalmology, 2019, 126(12): 1640-1646. doi:10.1016/j.ophtha.2019.07.023.
[1] TAN Yan, LI Can. Progress in the research of intraocular lens power calculation formulas [J]. Journal of Otolaryngology and Ophthalmology of Shandong University, 2019, 33(6): 95-98.
[2] LIN Jia, LIAO Xuan, LAN Changjun, TAN Qingqing, WEN Baiwei, TIAN Jing. Visual quality research on a custom selection of aspheric intraocular lenses in cataract patients [J]. Journal of Otolaryngology and Ophthalmology of Shandong University, 2019, 33(4): 109-114.
[3] CHEN Ying, LI Yuanbin. Progress in the treatment of congenital cataract [J]. Journal of Otolaryngology and Ophthalmology of Shandong University, 2019, 33(2): 143-148.
[4] LIANG Qianqian, YANG Tinghua, ZHAO Bojun. Application of optical coherence tomography angiography in retinal vein occlusion [J]. Journal of Otolaryngology and Ophthalmology of Shandong University, 2019, 33(2): 139-142.
[5] TANG Wei, LI Yuanbin. New progress in refractive cataract surgery [J]. Journal of Otolaryngology and Ophthalmology of Shandong University, 2019, 33(2): 149-158.
[6] LIU Jianbo, ZHANG Huan. Phacoemulsification combined with intravitreal ranibizumab or triamcinolone acetonide injection for the treatment of cataract accompanied by diabetic macular edema [J]. Journal of Otolaryngology and Ophthalmology of Shandong University, 2019, 33(2): 99-104.
[7] WANG Daoguang, LIU Dongmei, BI Hongsheng. A case of trifocal intraocular lens implantation in patients with over-long axial cataract [J]. Journal of Otolaryngology and Ophthalmology of Shandong University, 2018, 32(6): 117-118.
[8] WEI Chao, ZHANG Han. Multifocal intraocular lens: progress in clinical application. [J]. JOURNAL OF SHANDONG UNIVERSITY (OTOLARYNGOLOGY AND OPHTHALMOLOGY), 2017, 31(4): 29-35.
[9] JI Shuaifei, ZHANG Jie, YAN Hong. Selection of intraocular lens for patients with age-related macular degeneration. [J]. JOURNAL OF SHANDONG UNIVERSITY (OTOLARYNGOLOGY AND OPHTHALMOLOGY), 2017, 31(4): 36-39.
[10] TIAN Jing, LIAO Xuan, LAN Changjun, TAN Qingqing, LIN Jia, WEN Baiwei. Comparison of high order aberrations in pseudophakia with spherical intraocular lens and aspheric intraocular lens implantation. [J]. JOURNAL OF SHANDONG UNIVERSITY (OTOLARYNGOLOGY AND OPHTHALMOLOGY), 2017, 31(4): 13-17.
[11] ZHENG Wanqiu, WAN Wenjuan, LI Can. Application of anterior chamber maintainer in posterior capsular rupture in cataract surgery. [J]. JOURNAL OF SHANDONG UNIVERSITY (OTOLARYNGOLOGY AND OPHTHALMOLOGY), 2017, 31(4): 9-12.
[12] YANG Yuhuan, ZHANG Jie, ZHANG Jinpeng, YAN Hong. Effects of mydriasis on anterior chamber parameters measured by a Pentacam before and after cataract surgery. [J]. JOURNAL OF SHANDONG UNIVERSITY (OTOLARYNGOLOGY AND OPHTHALMOLOGY), 2017, 31(4): 5-8.
[13] BI Hongsheng. Design of treatment protocol in refractive cataract surgery is important for postoperative visual outcomes. [J]. JOURNAL OF SHANDONG UNIVERSITY (OTOLARYNGOLOGY AND OPHTHALMOLOGY), 2017, 31(4): 1-4.
[14] . Influencing factors of tonometry of intraocular pressure following LASIK. [J]. J Otolaryngol Ophthalmol Shandong Univ, 2017, 31(2): 99-103.
[15] LIU Lu, LIANG Hao. Distribution of corneal astigmatism among middle aged and senior citizens with cataract. [J]. JOURNAL OF SHANDONG UNIVERSITY (OTOLARYNGOLOGY AND OPHTHALMOLOGY), 2016, 30(6): 75-77.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!